4.7 Article

Citrus miraculin-like protein hijacks a viral movement-related p33 protein and induces cellular oxidative stress in defence against Citrus tristeza virus

期刊

PLANT BIOTECHNOLOGY JOURNAL
卷 19, 期 5, 页码 977-991

出版社

WILEY
DOI: 10.1111/pbi.13523

关键词

Citrus tristeza virus; miraculin‐ like protein; p33 protein; virus movement; cellular oxidative stress

资金

  1. National Science Foundation [1615723]
  2. Direct For Biological Sciences
  3. Div Of Molecular and Cellular Bioscience [1615723] Funding Source: National Science Foundation

向作者/读者索取更多资源

Plants have developed a complex immune system to defend against pathogens. A study found that Citrus macrophylla miraculin-like protein 2 (CmMLP2) employs a two-way strategy to resist Citrus tristeza virus (CTV) infection, including interrupting p33 distribution and inducing cellular stress to inhibit virus replication.
To defend against pathogens, plants have developed a complex immune system, which recognizes the pathogen effectors and mounts defence responses. In this study, the p33 protein of Citrus tristeza virus (CTV), a viral membrane-associated effector, was used as a molecular bait to explore virus interactions with host immunity. We discovered that Citrus macrophylla miraculin-like protein 2 (CmMLP2), a member of the soybean Kunitz-type trypsin inhibitor family, targets the viral p33 protein. The expression of CmMLP2 was up-regulated by p33 in the citrus phloem-associated cells. Knock-down of the MLP2 expression in citrus plants resulted in a higher virus accumulation, while the overexpression of CmMLP2 reduced the infectivity of CTV in the plant hosts. Further investigation revealed that, on the one hand, binding of CmMLP2 interrupts the cellular distribution of p33 whose proper function is necessary for the effective virus movement throughout the host. On the other hand, the ability of CmMLP2 to reorganize the endomembrane system, amalgamating the endoplasmic reticulum and the Golgi apparatus, induces cellular stress and accumulation of the reactive oxygen species, which inhibits the replication of CTV. Altogether, our data suggest that CmMLP2 employs a two-way strategy in defence against CTV infection.

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